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Keywords = Caco-2 cell model

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19 pages, 4446 KB  
Article
Probe Cytotoxic and Oxidative Stress Effects of Nanoplastics on Caco-2 Cells: Insights from Raman Spectroscopy and Machine Learning
by Bryan Gustafson, Negar Kosari, Emily Brothersen, Morgan Mosher and Anhong Zhou
Sensors 2026, 26(17), 5375; https://doi.org/10.3390/s26175375 - 25 Aug 2026
Abstract
Nanoplastics and microplastics have become an increasing ecological and health concern due to their widespread presence in the environment and food chain. In this study, Caco-2 cells were used as an in vitro model of the human intestinal epithelium to investigate the cytotoxic [...] Read more.
Nanoplastics and microplastics have become an increasing ecological and health concern due to their widespread presence in the environment and food chain. In this study, Caco-2 cells were used as an in vitro model of the human intestinal epithelium to investigate the cytotoxic effects of polystyrene nanoparticles and microparticles of varying sizes, concentrations, and surface modification. Oxidative stress and apoptosis were evaluated following particle exposure. Raman spectroscopy, combined with machine learning analysis, was employed to detect and characterize biochemical alterations in the cells. Several peak ratios were selected to cluster data depending on size. A correlation between apoptosis and both concentration and Raman score was established highlighting its potential as a non-invasive tool to monitor nanoparticle-induced cellular damage. Resveratrol pretreatment reduced some of these harmful effects of amine-modified nanoplastics, reducing reactive oxygen species generation. This study demonstrates the potential of combining Raman spectroscopy and machine learning to assess the cytotoxic effects of micro- and nanoplastics and identifies protective strategies such as antioxidant pretreatment. Full article
(This article belongs to the Section Biosensors)
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21 pages, 2400 KB  
Article
Amino Oxidase Hard Protein Corona with Metabolic-Triggered Intracellular Biocatalysis
by Federica Tonolo, Mary Bortoluzzi, Graziano Rilievo, Alessandro Cecconello, Aura Cencini, Lavinia Rutigliano, Maria Pia Rigobello, Maria Luisa Di Paolo, Alberto Macone, Pasquale Fino, Enzo Agostinelli, Massimiliano Magro and Fabio Vianello
Int. J. Mol. Sci. 2026, 27(16), 7492; https://doi.org/10.3390/ijms27167492 (registering DOI) - 21 Aug 2026
Viewed by 203
Abstract
A hard protein corona was engineered onto tannic acid-modified magnetic nanoparticles (SAMN@TA), a magnetic and luminescent core–shell nano-carrier, using bovine serum amine oxidase (BSAO), an enzyme catalyzing the oxidation of polyamines and producing the corresponding aldehydes and hydrogen peroxide. The absorption and intracellular [...] Read more.
A hard protein corona was engineered onto tannic acid-modified magnetic nanoparticles (SAMN@TA), a magnetic and luminescent core–shell nano-carrier, using bovine serum amine oxidase (BSAO), an enzyme catalyzing the oxidation of polyamines and producing the corresponding aldehydes and hydrogen peroxide. The absorption and intracellular bioactivity of the self-assembled multimodal SAMN@TA@BSAO were investigated on an intestinal barrier model built with human colorectal adenocarcinoma (Caco-2) cells. The tailored BSAO corona possessed fouling resistance and, at the same time, was able to activate the clathrin-mediated endocytosis (CME) mechanism. Despite its size and intrinsic complexity, the nano-vehicle was effectively transported across the cell layer, safely transiting across the cell cytoplasm and reaching the lumen. As a function of intracellular polyamine concentration, the system’s biological activity induced intracellular oxidative stress, leading to the activation of the Keap1/Nrf2 oxidative protection pathway. The SAMN@TA@BSAO effect was well described by a dose–response curve with an EC50 of around 30 µg mL−1 and a programmable killing efficiency (>50.0%), recalling the feasibility of a low molecular weight drug administration. The present study contributes to the nascent knowledge on engineering protein corona as a key to rationally design nanomaterials for biomedical applications. Full article
(This article belongs to the Collection Feature Papers in Molecular Biophysics)
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26 pages, 5322 KB  
Article
N-Acetylcysteine-Functionalized Mixed Micelles Overcome Multiple Intestinal Barriers to Improve Oral Bioavailability and Antioxidant Protection of Imperatorin
by Yu Zhang, Jian Guo, Haonan Qiu, Jiale Liu, Chi Zhang, Lutan Zhou, Chunfei Wang, Lihua Li and Xuefeng Hou
Pharmaceutics 2026, 18(8), 1036; https://doi.org/10.3390/pharmaceutics18081036 - 20 Aug 2026
Viewed by 252
Abstract
Background: Imperatorin (IPT) is a natural furanocoumarin featuring robust anti-inflammatory, antifibrotic and antioxidant activities. However, poor aqueous solubility and insufficient oral bioavailability restrict its clinical application. Multiple gastrointestinal barriers, including the mucus barrier, limited epithelial penetration and P-glycoprotein-triggered drug efflux, are major [...] Read more.
Background: Imperatorin (IPT) is a natural furanocoumarin featuring robust anti-inflammatory, antifibrotic and antioxidant activities. However, poor aqueous solubility and insufficient oral bioavailability restrict its clinical application. Multiple gastrointestinal barriers, including the mucus barrier, limited epithelial penetration and P-glycoprotein-triggered drug efflux, are major obstacles hindering IPT oral absorption. Methods: N-acetylcysteine (NAC)-functionalized TPGS conjugates were synthesized first. Using Pluronic® F108 and Lipoid® S-100 as a matrix, imperatorin@N-acetylcysteine-TPGS/Pluronic® F108/Lipoid® S-100 (IPT@NAC-TFS) micelles were fabricated. We characterized their physicochemical features and in vitro release behavior. The Caco-2/HT29-MTX-E12 co-culture cell model was adopted to explore mucus permeation, cellular uptake and transepithelial transport mechanisms. In vivo intestinal distribution and pharmacokinetic tests in rats were carried out to confirm the oral absorption-enhancing effect of micelles. Results: Optimized micelles displayed a uniform shape and favorable encapsulation efficiency. Low CMC maintained structural stability upon gastrointestinal dilution. NAC modification conferred mucus-penetrating capacity on micelles. TPGS simultaneously improved epithelial barrier permeability and inhibited drug efflux, switching IPT transport mode. The micelles effectively cleared intracellular ROS, recovered SOD activity and lowered MDA levels in BLM-impaired MLg fibroblasts. In vivo results revealed enhanced intestinal drug accumulation, with the relative oral bioavailability of IPT increased by 6.07-fold. Conclusions: IPT@NAC-TFS micelles overcome multiple gastrointestinal barriers for oral IPT delivery. Combining mucus penetration, efflux suppression and antioxidative capacity, this system offers a promising strategy to develop oral formulations of poorly soluble antifibrotic natural products. Full article
(This article belongs to the Section Drug Delivery and Controlled Release)
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15 pages, 3603 KB  
Article
Moxifloxacin-Mediated Downregulation of Intestinal P-Glycoprotein Alters the Pharmacokinetics of Dabigatran Etexilate: Mechanistic Insights in Rats and PBPK Model-Informed Dose Optimization
by Yuchen Qu, Zhuan Yang, Wen Ma, Peng Xiao, Yani Gu, Jie Pan, Xinyun Zhang, Chen Zhao and Yunli Yu
Pharmaceutics 2026, 18(8), 1031; https://doi.org/10.3390/pharmaceutics18081031 - 20 Aug 2026
Viewed by 202
Abstract
Background: In patients with atrial fibrillation receiving long-term anticoagulation therapy with dabigatran etexilate (DABE), moxifloxacin (MFLX) is frequently coadministered to treat concurrent infections; however, the potential drug–drug interaction (DDI) between these agents remains unclear. Herein, we examined the underlying mechanism by which [...] Read more.
Background: In patients with atrial fibrillation receiving long-term anticoagulation therapy with dabigatran etexilate (DABE), moxifloxacin (MFLX) is frequently coadministered to treat concurrent infections; however, the potential drug–drug interaction (DDI) between these agents remains unclear. Herein, we examined the underlying mechanism by which MFLX attenuates DABE pharmacokinetics in rats; subsequently, we elucidated the DDI in humans by establishing a physiologically based pharmacokinetic (PBPK) model based on these animal data. Methods: The 3- and 14-day effects of 40 mg/kg MFLX once daily and secondary bile acid (SBA)-containing dietary intervention on the pharmacokinetic profile of DABE and its active form, dabigatran (DAB), were examined in a rat model. Ileum tissues were harvested to measure the expression of P-glycoprotein (P-gp), pregnane X receptor (PXR), and peroxisome proliferator-activated receptor alpha (PPARα). In addition, we examined the effects of secondary bile acids (SBAs) on P-gp expression and quantified P-gp-mediated DABE efflux transport activity in Caco-2 cells. A PBPK model was used to predict the risk of DAB exposure under this DDI scenario and under combined high-risk conditions, including renal impairment and advanced age. Results: Treatment with MFLX for 3 and 14 days inhibited SBA-producing gut microbiota, thereby suppressing the conversion of primary bile acids to SBAs. Concurrently, a marked reduction in intestinal P-gp expression was observed, along with a significant enhancement of the oral bioavailability of DABE. These effects were reversed by SBA-containing diets. In vitro experiments using Caco-2 cells revealed that physiologically relevant concentrations of SBA significantly upregulated P-gp expression and function, whereas MFLX incubation alone showed no direct modulatory effect on these transporters or regulators. PBPK simulation results showed that in vivo exposure of DAB would increase by 41.7%, 104%, 251%, and 115% when coadministered with MFLX alone, with coexisting mild renal impairment, moderate renal impairment, and aging, respectively. Conclusions: MFLX increases DAB exposure by reducing SBA-regulated intestinal P-gp function. PBPK simulations suggest a low risk of DDI from MFLX coadministration alone; however, caution is warranted in patients with aging or renal impairment. Full article
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19 pages, 2677 KB  
Article
Arctic Fox-Derived Lactiplantibacillus plantarum J3 Alleviates Colitis in Mice in Association with Strengthening of the Intestinal Barrier and Reshaping of the Intestinal Flora
by Yiwen Sun, Jing Lv, Xiangyu Meng, Yanqiu Sun, Hualin Fu, Wei Xu and Zhiheng Du
Life 2026, 16(8), 1355; https://doi.org/10.3390/life16081355 - 18 Aug 2026
Viewed by 201
Abstract
Probiotic interventions for inflammatory bowel disease (IBD) have become a hot research topic in this field. However, no previous studies have investigated whether fox-derived probiotics exert therapeutic effects against colitis. The present investigation evaluated the effects of Lactiplantibacillus plantarum (syn. Lactobacillus plantarum) [...] Read more.
Probiotic interventions for inflammatory bowel disease (IBD) have become a hot research topic in this field. However, no previous studies have investigated whether fox-derived probiotics exert therapeutic effects against colitis. The present investigation evaluated the effects of Lactiplantibacillus plantarum (syn. Lactobacillus plantarum) J3, sourced from the intestines of healthy Arctic foxes, on colitis. In an in vitro LPS-stimulated Caco-2 cell model, strain J3 exhibited prominent anti-inflammatory and antioxidant capacities, indicating potential to preserve intestinal barrier integrity. Furthermore, in an in vivo DSS-induced colitis mouse model, oral J3 supplementation markedly alleviated body weight loss, lowered disease activity index (DAI), and ameliorated histopathological lesions in colon tissues. Mechanistic analyses revealed that the J3 group displayed significantly decreased colonic levels of TNF-α, IL-1β, IL-6, MPO, PGE2, along with downregulated COX-2 mRNA expression (p < 0.05). By contrast, the levels of IL-10, TJ protein mRNA, and MUC2 mRNA were markedly upregulated, whereas serum LPS and D-Lac concentrations were significantly reduced (p < 0.05). In an exploratory analysis of 16S rDNA and short-chain fatty acids (SCFAs) in a subset of mice, J3 treatment showed a trend toward colonic microbial remodeling, accompanied by a significant increase in short-chain fatty acid production (p < 0.05). Overall, these findings indicate that Lactiplantibacillus plantarum J3 derived from foxes may alleviate DSS-induced colitis in mice, providing a basis for future translational research. Full article
(This article belongs to the Section Pharmaceutical Science)
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24 pages, 12183 KB  
Article
Sophora moorcroftiana Seeds Ethanol Extract Against Metabolic Dysfunction-Associated Steatotic Liver Disease in Mice by Modulating Gut Microbiota Dysbiosis, SCFAs, and Related Inflammation
by Xiaotong Chu, Shuang Zhang, Mingxue Cui, Xiaojing Sun, Xiao Chen, Liying Gao, Ruiying Yuan, Sicen Wang, Shan Huang and Bin Li
Int. J. Mol. Sci. 2026, 27(16), 7368; https://doi.org/10.3390/ijms27167368 - 18 Aug 2026
Viewed by 220
Abstract
Despite the traditional application of Sophora moorcroftiana (Benth.) Baker seeds for liver disorders, the capacity of its 70% ethanol extract (SMS) to alleviate metabolic dysfunction-associated steatotic liver disease (MASLD) and the underlying gut–liver axis mechanisms remain unclear. In this study, a high-fat diet [...] Read more.
Despite the traditional application of Sophora moorcroftiana (Benth.) Baker seeds for liver disorders, the capacity of its 70% ethanol extract (SMS) to alleviate metabolic dysfunction-associated steatotic liver disease (MASLD) and the underlying gut–liver axis mechanisms remain unclear. In this study, a high-fat diet (HFD)-induced MASLD mouse model was established to investigate the protective effects of SMS and its regulatory role in the interplay among gut microbiota, short-chain fatty acids (SCFAs), and inflammation. Serum, intestinal, and hepatic samples were collected to evaluate inflammatory responses, intestinal barrier integrity, and hepatic lipid metabolism. Gut microbiota composition and SCFA profiles were analyzed using 16S rRNA sequencing and metabolomics. In LPS-stimulated Caco-2 cells, SMS reduced inflammatory cytokines and TLR4/MyD88/NF-κB-associated signaling. The results demonstrated that SMS markedly alleviated hepatic steatosis by reducing triglyceride synthesis and hepatocellular lipid accumulation. In addition, SMS promoted the proliferation of beneficial bacteria, including Bifidobacterium and Akkermansia, and increased the production of SCFAs, particularly butyrate. SMS also restored intestinal barrier integrity through upregulation of Occludin and Claudin-1, thereby reducing circulating lipopolysaccharide (LPS) levels. Furthermore, SMS attenuated inflammation by inhibiting activation of the TLR4/NF-κB signaling pathway. Collectively, these findings demonstrate that SMS alleviates MASLD through coordinated modulation of gut microbiota composition, SCFA metabolism, intestinal barrier function, and inflammatory responses, highlighting its potential as a therapeutic strategy targeting the gut–liver axis. Full article
(This article belongs to the Special Issue Activity and Efficacy Evaluation of Natural Products)
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20 pages, 3376 KB  
Article
Preservation of Antioxidant and Immunomodulatory Properties in a Heat-Treated Probiotic Blend: Insights from Preclinical Models
by Daniel González-Hedström, Silvia Llopis, Nuria González, Ester Pardo, Verónica Navarro, Jennifer Redondo, Guillermo García-Lainez, Valerio Rossini, Miren Maicas, Verónica Martínez-Ríos, Empar Chenoll and Patricia Martorell
Microorganisms 2026, 14(8), 1820; https://doi.org/10.3390/microorganisms14081820 - 18 Aug 2026
Viewed by 270
Abstract
In a previous clinical trial, it was shown that a probiotic blend (Bifidobacterium longum CECT 7347 (Esflorin1™), Lacticaseibacillus rhamnosus CECT 8361 (BPL15) and Lacticaseibacillus casei CECT 9104 (BPL4)) reduced oxidative stress in males engaging in intense exercise. The present study evaluated whether [...] Read more.
In a previous clinical trial, it was shown that a probiotic blend (Bifidobacterium longum CECT 7347 (Esflorin1™), Lacticaseibacillus rhamnosus CECT 8361 (BPL15) and Lacticaseibacillus casei CECT 9104 (BPL4)) reduced oxidative stress in males engaging in intense exercise. The present study evaluated whether the probiotic blend’s functional properties are preserved after heat treatment and investigated the underlying mechanism of action using preclinical models. The antioxidant, immunomodulatory and intestinal effects of the heat-treated and probiotic blends were assed using in vitro assays and Caenorhabditis elegans (C. elegans) models. The heat-treated blend preserved the antioxidant activity by scavenging free radicals, reducing intracellular reactive oxygen species and enhancing survival in C. elegans under oxidative stress, possibly via sod-3 upregulation in the CF1553 strain. It also enhanced mitochondrial biogenesis and ATP production in C2C12 via AMPK phosphorylation. Both versions attenuated a gut inflammatory response, improved intestinal barrier in Caco-2 cells and C. elegans and exhibited immunomodulatory activity in U937 macrophages at the tested concentrations. These findings support the heat-treated blend as a promising postbiotic supplement to manage oxidative stress and other physiological alterations associated with intense exercise. Full article
(This article belongs to the Section Food Microbiology)
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22 pages, 10204 KB  
Article
Biopharmaceutical Characterization of Grapiprant Within the BCS Framework Under Canine-Relevant Conditions: Solubility and Caco-2 Permeability Assessment
by Zeyu Wen, Xilu Sun, Sumeng Chen, Jinyan Meng, Runlin Yu, Shuyan Guo and Xingyuan Cao
Pharmaceutics 2026, 18(8), 1010; https://doi.org/10.3390/pharmaceutics18081010 - 15 Aug 2026
Viewed by 339
Abstract
Background: The Biopharmaceutics Classification System (BCS) classifies drug substances according to their aqueous solubility and intestinal permeability; however, its application to veterinary drugs should account for species-specific gastrointestinal physiology. Grapiprant is a selective prostaglandin E2 receptor subtype 4 (EP4) antagonist approved [...] Read more.
Background: The Biopharmaceutics Classification System (BCS) classifies drug substances according to their aqueous solubility and intestinal permeability; however, its application to veterinary drugs should account for species-specific gastrointestinal physiology. Grapiprant is a selective prostaglandin E2 receptor subtype 4 (EP4) antagonist approved as an oral tablet to control pain and inflammation associated with osteoarthritis in dogs, but its properties within the BCS framework remain unclear. Methods: This study evaluated the equilibrium solubility of grapiprant across pH conditions relevant to the canine gastrointestinal tract and calculated the dose number (D0) based on different gastric fluid volumes. A Caco-2 cell monolayer model was used to assess grapiprant intestinal permeability and the effects of time, concentration, pH, and efflux transporter inhibitors on its transepithelial transport. Results: Grapiprant showed relatively small changes in solubility across the tested pH range. D0 varied with pH and gastric fluid volume and approached or fell below 1 at larger fluid volumes. In the Caco-2 model, grapiprant showed generally limited apparent absorptive permeability, with permeability varying with pH. Efflux ratios were greater than 1, and verapamil reduced the efflux ratio, suggesting possible P-glycoprotein (P-gp) involvement. Conclusions: These findings suggest that both solubility and apparent intestinal permeability may limit the oral absorption of grapiprant under certain canine-relevant conditions. Accordingly, this study provides a biopharmaceutical characterization of grapiprant within the BCS framework rather than a definitive canine BCS classification, highlighting the importance of considering canine gastrointestinal conditions when interpreting its solubility and permeability. The results may support future optimization of dosing conditions and oral formulations. Full article
(This article belongs to the Section Biopharmaceutics)
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28 pages, 9809 KB  
Article
A Sequential Gut–Pancreas–Liver In Vitro Model to Evaluate the Multi-Target Metabolic Effects of a Nutraceutical Formulation in MASLD-Related Conditions
by Rebecca Galla, Simone Mulè, Francesca Parini and Francesca Uberti
Livers 2026, 6(4), 73; https://doi.org/10.3390/livers6040073 - 4 Aug 2026
Viewed by 358
Abstract
Background/Objectives: Metabolically dysregulated-associated steatotic liver disease (MASLD) is a complex, multifactorial disorder characterised by hepatic lipid accumulation, insulin resistance, oxidative stress, and dysfunction of the gut–liver axis. Given its intricate pathophysiology, multi-target nutritional strategies represent a promising complementary approach. This study aimed [...] Read more.
Background/Objectives: Metabolically dysregulated-associated steatotic liver disease (MASLD) is a complex, multifactorial disorder characterised by hepatic lipid accumulation, insulin resistance, oxidative stress, and dysfunction of the gut–liver axis. Given its intricate pathophysiology, multi-target nutritional strategies represent a promising complementary approach. This study aimed to evaluate the biological effects of a multi-component nutraceutical formulation using an integrated in vitro platform replicating intestinal, hepatic, and pancreatic–liver interactions. Methods: The formulation was tested on Caco-2 intestinal cells to assess cell viability, transepithelial electrical resistance (TEER), probiotic functional properties, and glucose absorption. Intestinally processed metabolites were then applied to HepaRG liver cells under hyperglycemic (glucose) or lipotoxic conditions (oleic acid/palmitic acid) to analyse lipid accumulation, cholesterol biomarkers (HMGR, LDL), bile acid production, and cellular damage (ALT, AST). Finally, a pancreas–liver co-culture model (EndoC-βH5 and HepaRG) was employed to investigate insulin secretion and downstream hepatic metabolic signalling (IRS1, GLUT2, glycogen). Results: The formulation preserved intestinal barrier integrity and enhanced probiotic functionality, including aggregation and hydrophobicity. In hepatic models, the treatment significantly reduced intracellular lipid accumulation and triglycerides, while increasing bile acid production and improving cholesterol profiles. Under steatotic stress, it lowered transaminase levels and downregulated lipogenic signalling. In the pancreas–liver axis model, the formulation restored glucose-stimulated insulin secretion and improved hepatic metabolic signalling by increasing IRS1 levels and glycogen synthesis, indicating enhanced insulin sensitivity. Conclusions: These findings support the biological plausibility of a multi-target nutraceutical approach for MASLD. The formulation demonstrates coordinated beneficial effects on intestinal barrier function, hepatic lipid management, and glucose metabolism, providing a strong rationale for further clinical investigation. Full article
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19 pages, 2928 KB  
Article
Modulation of Dietary 5-Hydroxymethylfurfural-Induced Intestinal Epithelial Stress by Blueberry Polyphenols
by Rosario Mare, Francesca Rita Noto, Martina Rago, Kardelen Aslan, Angelo Galluccio, Luana Carmen Mirabello, Ilenia Lio, Samantha Maurotti, Gülhan Samur, Arturo Pujia and Tiziana Montalcini
Int. J. Mol. Sci. 2026, 27(15), 6665; https://doi.org/10.3390/ijms27156665 - 26 Jul 2026
Viewed by 330
Abstract
Ultra-processed foods expose consumers to heat-induced contaminants like 5-hydroxymethylfurfural (5-HMF), which impairs intestinal homeostasis via oxidative stress and inflammation. This study quantified 5-HMF in bakery products and evaluated blueberry polyphenols’ capacity to attenuate 5-HMF-induced cellular stress in an in vitro Caco-2 intestinal model. [...] Read more.
Ultra-processed foods expose consumers to heat-induced contaminants like 5-hydroxymethylfurfural (5-HMF), which impairs intestinal homeostasis via oxidative stress and inflammation. This study quantified 5-HMF in bakery products and evaluated blueberry polyphenols’ capacity to attenuate 5-HMF-induced cellular stress in an in vitro Caco-2 intestinal model. 5-HMF levels in commercial bakery products were determined using a colorimetric assay and HPLC-UV. Differentiated Caco-2 cells were exposed to 5-HMF (0.4 mM) for 48 h, alone or co-treated with blueberry juice (15 µg/mL of phenol equivalents). ROS production, lipid accumulation, gene expression of antioxidant, lipid, and inflammatory markers, and NF-κB/ERK signaling pathways were analyzed. HPLC-UV accurately quantified 5-HMF in bakery products (exceeding 2 mg/100 g), revealing systematic overestimation by the colorimetric method. In Caco-2 cells, 5-HMF significantly increased ROS, lipid accumulation, inflammatory cytokines (NLRP3, IL1B, and IL18), and activated NF-κB and p-ERK. Co-treatment with blueberry juice reduced ROS and lipids, upregulated the NRF2 antioxidant pathway, and drastically suppressed NF-κB -mediated inflammation. 5-HMF induced markers of metabolic dysfunction, oxidative stress, and inflammation in the intestinal epithelial model. Polyphenol-rich blueberry juice attenuated 5-HMF-induced alterations at the tested concentration, suggesting a potential protective nutritional strategy against epithelial stress associated with food-processing contaminants. Full article
(This article belongs to the Special Issue Extraction, Identification and Quantification of Bioactive Molecules)
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35 pages, 5004 KB  
Article
Phytochemical Profile and Biological Activities of Baccharis dracunculifolia DC—Aerial-Parts Extract: In Vitro Evaluation and Predictive Analyses
by Zilda Cristiani Gazim, Filipa Mandim, Josiana Vaz, Lillian Barros, Gabriel Augusto Rodrigues Beirão, Gabriel Ribeiro da Silva, Annye Vitória Moraes, Simone Francisca de Paula, Lidiane Nunes Barbosa, Beatriz Cervejeira Bolanho Barros, Daniela Dib Gonçalves, Juliana Silveira do Valle, Antonio Laverde Junior and Arquimedes Gasparotto Junior
Pharmaceuticals 2026, 19(8), 1162; https://doi.org/10.3390/ph19081162 - 25 Jul 2026
Viewed by 407
Abstract
Background and Objectives: Baccharis dracunculifolia DC. (Asteraceae), the main botanical source of Brazilian green propolis, is recognized for its high content of bioactive secondary metabolites. Given this potential, this study aimed to characterize the chemical profile of the crude extract (CE) from [...] Read more.
Background and Objectives: Baccharis dracunculifolia DC. (Asteraceae), the main botanical source of Brazilian green propolis, is recognized for its high content of bioactive secondary metabolites. Given this potential, this study aimed to characterize the chemical profile of the crude extract (CE) from the aerial parts of B. dracunculifolia and to investigate its anti-inflammatory, antiproliferative, antioxidant, and photoprotective properties. Predictive computational analyses were used to assist the interpretation of the experimental findings. Methods: The CE was obtained by dynamic maceration with ethanol and chemically characterized by UHPLC-MS/MS using external calibration curves. Anti-inflammatory activity was evaluated by inhibiting nitric oxide (NO) in RAW 264.7 macrophages, while cellular antioxidant activity (CAA) was determined in the same model. Antiproliferative activity was evaluated against the human tumor cell lines AGS, Caco-2, MCF-7, and NCI-H460, as well as non-tumor VERO cells. Additionally, antioxidant potential was investigated using classical colorimetric methods (DPPH, FRAP, and ABTS). The extract was also quantified for total phenolic and flavonoid content, as well as sun protection factor (SPF). Furthermore, complementary computational analyses included PASS prediction, SwissTargetPrediction, Gene Ontology enrichment using PANTHER, SwissADME profiling, and toxicity prediction with ProTox-III. Results: UHPLC-MS/MS analysis revealed a profile rich in flavonoids and phenolic acids and led to the identification of 14 compounds not previously reported in B. dracunculifolia according to the literature examined, notably the flavonoid morin and the phenylpropanoid coniferaldehyde detected at comparatively high concentrations (>600 µg/g). CE inhibited NO production (IC50 = 62.00 µg/mL) suggesting anti-inflammatory activity, and reduced intracellular oxidation by 81% (at 2000 µg/mL) in RAW 264.7 macrophages. The extract showed total phenolic content (83.62 to 540.40 µg gallic acid equivalents/mg of CE) and high levels of flavonoids (472.00–515.00 µg quercetin equivalents/mg of CE), antioxidant activity in the DPPH assay (IC50 = 0.86 mg/mL), and relevant photoprotective potential (SPF = 7.79–19.30). Antiproliferative activity was moderate to weak (GI50 = 165.00–257.00 µg/mL). In silico analyses identified predicted activities, molecular targets, and enriched biological processes related to redox homeostasis, inflammation, apoptosis, and cellular responses to UV radiation, suggesting biological functions potentially associated with the identified metabolites. Conclusions: The crude extract of B. dracunculifolia demonstrated significant cellular anti-inflammatory and antioxidant activities, likely associated with its phenolic composition and the presence of metabolites reported in this study for the first time in this species, particularly morin and coniferaldehyde. These findings expand the phytochemical knowledge of B. dracunculifolia and reinforce its potential as a source of bioactive compounds for pharmaceutical, nutraceutical, and photoprotective applications. Full article
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18 pages, 3510 KB  
Article
In Vitro and Ex Vivo Studies on the Absorption and Distribution of β-Cyclodextrin Polymer
by Réka Révész, Akay Dogan Mengenli, Ágnes Rusznyák, Richárd Kajtár, István Lekli, Ildikó Bácskay and Ádám Haimhoffer
Pharmaceutics 2026, 18(7), 854; https://doi.org/10.3390/pharmaceutics18070854 - 14 Jul 2026
Viewed by 370
Abstract
Background: Cyclodextrin (CD) polymers have attracted increasing attention due to their favourable drug delivery properties and broad pharmaceutical applicability. While the bioavailability and biological behaviour of native cyclodextrins have been extensively investigated, considerably less information is available regarding modified cyclodextrin polymers. Therefore, [...] Read more.
Background: Cyclodextrin (CD) polymers have attracted increasing attention due to their favourable drug delivery properties and broad pharmaceutical applicability. While the bioavailability and biological behaviour of native cyclodextrins have been extensively investigated, considerably less information is available regarding modified cyclodextrin polymers. Therefore, the present study aimed to investigate the permeation and cellular uptake of an epichlorohydrin-crosslinked β-cyclodextrin polymer using multiple in vitro and ex vivo models. Methods: Fluorescently labelled β-cyclodextrin polymers were applied in all experiments. Membrane permeation studies were performed using an in-line diffusion cell system with membranes of different pore sizes. In vitro transport and cellular uptake were investigated on HaCaT, Caco-2, and TR146 cell monolayers, while ex vivo permeation studies were carried out using skin, buccal, and intestinal tissues. Results: The results demonstrated a strong size-dependent transport behaviour across synthetic membranes. Cell monolayer studies revealed cell-line-dependent differences in polymer intracellular distribution. Lysosomal accumulation was observed in HaCaT and Caco-2 cells, whereas no intracellular accumulation was detected in TR146 cells. These findings suggest differences in polymer permeation among the investigated cell models. Ex vivo studies demonstrated the tissue permeation of cyclodextrin polymers, with marked accumulation within skin layers, indicating predominant dermal retention. Furthermore, strong correlations were identified between the in vitro and ex vivo skin and intestinal models. Conclusions: Overall, the findings demonstrate that β-cyclodextrin polymers exhibit complex, barrier-dependent transport behaviour across different biological models. The observed differences in permeation and intracellular localization suggest that multiple transport processes may contribute to their biological interactions, which provide a foundation for future studies aimed at elucidating the molecular mechanisms governing polymer uptake and permeation. Full article
(This article belongs to the Section Pharmacokinetics and Pharmacodynamics)
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22 pages, 2005 KB  
Article
From Synthesis Optimization to Chelation Mechanism: A Rice Protein Peptide–Calcium Complex Enhances Intestinal Calcium Absorption and Bone Formation via the TRPV6-Calbindin9k Axis
by Yue Tian, Wenting Yang, Yangzheng He, Xin Bi and Yong Sun
Foods 2026, 15(14), 2490; https://doi.org/10.3390/foods15142490 - 14 Jul 2026
Viewed by 530
Abstract
Rice protein peptides, abundant byproducts of rice processing, represent a sustainable source for developing novel nutritional delivery systems. To address the low bioavailability of traditional calcium supplements, this study aimed to fabricate a high-performance calcium-chelating complex (RPP-Ca) and elucidate its functional mechanism. The [...] Read more.
Rice protein peptides, abundant byproducts of rice processing, represent a sustainable source for developing novel nutritional delivery systems. To address the low bioavailability of traditional calcium supplements, this study aimed to fabricate a high-performance calcium-chelating complex (RPP-Ca) and elucidate its functional mechanism. The synthesis process was systematically optimized, yielding a maximum calcium-binding capacity of 93.98 ± 1.99 mg/g under optimal conditions (pH 10, 70 °C, 50 min reaction time, peptide-to-calcium mass ratio of 2:1). Physicochemical characterization utilizing scanning electron microscopy (SEM) and Fourier transform infrared spectroscopy (FTIR) confirmed successful chelation, revealing significant microstructural reorganization and enhanced thermal stability compared to native peptides. Functional validation via in vitro Caco-2 cell models and in vivo calcium-deficient mouse models demonstrated that RPP-Ca significantly promotes intestinal calcium absorption and osteogenesis. Mechanistically, these effects were mediated through the activation of the TRPV6-Calbindin9k signaling axis. These findings underscore the potential of industrial rice protein peptides as an effective and bioavailable calcium fortification ingredient, providing a theoretical basis for the high-value utilization of rice byproducts in functional foods. Full article
(This article belongs to the Special Issue Bioactive Compounds in Food: Sources, Health Benefits and Mechanisms)
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24 pages, 17615 KB  
Article
Marine Collagen Peptide Fraction from Lutjanus erythropterus Scales: A Multifunctional Bioactive for Intestinal Barrier Protection and Redox Modulation in Ulcerative Colitis
by Qi Deng, Muhammad Kashif Imtiaz, Jiabao Huang, Ali Imran, Mei Qiu, Zhijiia Fang and Rui-Bo Jia
Foods 2026, 15(14), 2480; https://doi.org/10.3390/foods15142480 - 13 Jul 2026
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Abstract
Low-molecular-weight collagen peptides from food processing byproducts offer a sustainable approach to mitigating intestinal inflammation, yet their mechanistic roles remain incompletely understood. We evaluated red fish scale collagen peptides-I (LSCP-I), a <3 kDa collagen peptide fraction derived from Lutjanus erythropterus scales, in cellular [...] Read more.
Low-molecular-weight collagen peptides from food processing byproducts offer a sustainable approach to mitigating intestinal inflammation, yet their mechanistic roles remain incompletely understood. We evaluated red fish scale collagen peptides-I (LSCP-I), a <3 kDa collagen peptide fraction derived from Lutjanus erythropterus scales, in cellular and murine models of colitis. In Caco-2 cells subjected to macrophage-mediated inflammatory injury, LSCP-I (50 µg/mL) increased proliferation by 35%, enhanced migration by 40%, preserved barrier integrity, reduced reactive oxygen species (ROS) by 45%, decreased lipid peroxidation by 30%, and restored glutathione (GSH) and superoxide dismutase (SOD) activity. In mice with dextran sulfate sodium (DSS)-induced colitis, oral administration of LSCP-I at 200, 400 and 800 mg/kg/day attenuated weight loss and diarrhea, lowered intestinal permeability by 38%, enhanced colon histology, and restored the balance between pro- and anti-inflammatory cytokines. Mechanistically, LSCP-I activated the Nrf2 antioxidant pathway and partially restored gut microbiota composition. These results demonstrate that LSCP-I reinforces intestinal barrier function, restores redox homeostasis, and modulates host–microbiota interactions, establishing its potential as a functional food ingredient for the prevention and management of inflammatory bowel disease. Full article
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24 pages, 1900 KB  
Article
Plant- and Algae-Derived Compounds Enhance the Anticancer Activity of Doxorubicin in Colorectal Cancer Cell Lines
by José Alberto Ramos-Silva, Gabriel Lara-Hernández, José Antonio Fuentes-Garibay, Elvia Pérez-Soto, Ericka Patricia Flores-Berrios and Hamlet Avilés-Arnaut
Molecules 2026, 31(14), 2414; https://doi.org/10.3390/molecules31142414 - 9 Jul 2026
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Abstract
Colorectal cancer (CRC) remains one of the leading causes of cancer-related mortality worldwide, and the efficacy of conventional chemotherapy is frequently limited by systemic toxicity, chemoresistance, and tumor recurrence. Natural products derived from marine algae and plants have attracted increasing interest as multitarget [...] Read more.
Colorectal cancer (CRC) remains one of the leading causes of cancer-related mortality worldwide, and the efficacy of conventional chemotherapy is frequently limited by systemic toxicity, chemoresistance, and tumor recurrence. Natural products derived from marine algae and plants have attracted increasing interest as multitarget adjuvant agents capable of modulating apoptosis, oxidative stress, and tumor-associated signaling pathways. In the present study, we evaluated the anticancer activity of commercially available formulations enriched in fucoxanthin, fucoidan, tocotrienols, astaxanthin, and apple polyphenols, either alone or in combination with doxorubicin (DOX), using two-dimensional and three-dimensional colorectal cancer models. Initial IC50 screening in ovarian (OVCAR3), prostate (PC3), colorectal (Caco2 and HT-29), and non-tumorigenic colon epithelial cells demonstrated that formulations 2.1 and 10.0 exhibited the most relevant cytotoxic activity, particularly in colorectal cancer cells. Combined treatments with DOX significantly reduced cell viability compared to individual treatments, particularly in Caco2 cells, where viability decreased to approximately 10% under combined exposure conditions. Mechanistically, combined treatments enhanced caspase-3/7 activation in both Caco2 and HT-29 cells, indicating apoptosis-associated effects. These findings were further supported in three-dimensional spheroid models, where supplement combinations impaired spheroid expansion, induced apoptotic AO/EB staining patterns, and reduced HT-29 spheroid growth by approximately 30–35%, reaching inhibitory effects comparable to DOX alone. Collectively, these results suggest that plant- and algae-derived formulations enriched in antioxidant bioactives may enhance chemotherapy-associated antitumor responses through apoptosis-related mechanisms and modulation of tumor-like growth behavior. The present findings support the further exploration of natural-product-based adjuvant strategies in colorectal cancer therapy using more clinically representative chemotherapeutic schemes and in vivo models. Full article
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